在高压下近一维铁磁体CrSbSe3的超导性
Chen Li1,2, Yiming Wang2, Ke Liu2
1School of Materials Science and Engineering, Peking University, Beijing 100871, China.
Journal of the American Chemical Society
|March 1, 2024
概括
在高压下发现抗氧化 (CrSbSe3) 的超导性. 这一发现扩大了基于的超导体的范围,
科学领域:
- 凝聚物质物理学
- 材料科学
- 固态化学
背景情况:
- 基于的化合物的超导性仍未得到充分研究,已知结构类型有限.
- 了解系统中的磁性和超导性之间的相互作用至关重要.
研究的目的:
- 发现新的基于的超导体.
- 在CrSbSe3中研究压力诱导的相变和超导性.
- 探索近一维材料中的超导性.
主要方法:
- 高压合成和CrSbSe3的表征
- 在不同压力和温度下测量电阻.
- 结构阶段转换和金属化的分析.
主要成果:
- 在32.8GPa时观察到CrSbSe3的超导性,与金属化相吻合.
- 在57.9GPa时达到7.7K的最大超导过渡温度 (Tc).
- 观察到压力诱导的绝缘体到金属的转变和体积崩.
结论:
- CrSbSe3是基于的超导体家族的新成员.
- 在CrSbSe3中的超导性归因于声子软化和增强的p-d杂交.
- 这一发现鼓励在低维范德瓦尔斯材料中寻找超导.
更多相关视频
09:06Visualizing Uniaxial-strain Manipulation of Antiferromagnetic Domains in Fe1+YTe Using a Spin-polarized Scanning Tunneling Microscope
Published on: March 24, 2019
8.1K
04:51Comparison of Two Different Synthesis Methods of Single Crystals of Superconducting Uranium Ditelluride
Published on: July 8, 2021
2.8K
相关概念视频
Superconductor
1.1K
A substance that reaches superconductivity, a state in which magnetic fields cannot penetrate, and there is no electrical resistance, is referred to as a superconductor. In 1911, Heike Kamerlingh Onnes of Leiden University, a Dutch physicist, observed a relation between the temperature and the resistance of the element mercury. The mercury sample was then cooled in liquid helium to study the linear dependence of resistance on temperature. It was observed that, as the temperature decreased, the...
1.1K
Types Of Superconductors
979
A superconductor is a substance that offers zero resistance to the electric current when it drops below a critical temperature. Zero resistance is not the only interesting phenomenon as materials reach their transition temperatures. A second effect is the exclusion of magnetic fields. This is known as the Meissner effect. A light, permanent magnet placed over a superconducting sample will levitate in a stable position above the superconductor. High-speed trains that levitate on strong...
979
Ferromagnetism
2.4K
Materials like iron, nickel, and cobalt consist of magnetic domains, within which the magnetic dipoles are arranged parallel to each other. The magnetic dipoles are rigidly aligned in the same direction within a domain by quantum mechanical coupling among the atoms. This coupling is so strong that even thermal agitation at room temperature cannot break it. The result is that each domain has a net dipole moment. However, some materials have weaker coupling, and are ferromagnetic at lower...
2.4K
